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Defense Intelligence Reference Document Technological Approaches To Controlling

Defense Intelligence Agency · 36 pages · text from the file's own layer

This Defense Intelligence Reference Document from the Defense Intelligence Agency, dated 23 March 2010, was produced under the Advanced Aerospace Weapon System Applications (AAWSA) Program. It surveys invasive and noninvasive brain-machine interface technologies for controlling external devices without limb-operated interfaces. The technologies covered include EEG, MEG, fMRI, NIRS, and implanted electrode arrays. It concludes that noninvasive electrical monitoring is the most promising near-term approach. In the long term, it favors invasive single-neuron cortical connections that use optical stimulation or chip-based arrays.

  • p. 5 UNCLASSIFIED/)' Pett :SPPll!ltllt '11815 .,.LY Technological Approaches to Controlling External Devices in the Absence of…
  • p. 8 …Neurons require some time to reset between firings, nominally the duration of the pulse for that…
  • p. 10 UNCLASSIFIED/ ,erg A gffllil.t.L '1181!! 8HLY The brain activity mentioned above is a complex…
  • p. 13 …The response time to execute a command using these systems is measured in seconds. The results…
  • p. 14 …application, the fact that 100 IT is about 100 million times smaller than the Earth's…
  • p. 15 …In current MRis, these gradient fields are produced with electromagnets, and the series of time-dependent…
  • p. 18 …prior to implantation, and then the tasks are repeated multiple times while muscle action and cortical…
  • p. 19 …the movement control algorithm is similar to a population vector in that movement at each time…
  • p. 20 UNCLASSIFIED/,'P81il 8PPll!ltllt ~81!! 8HLV Japan in real time. Using visual feedback to the monkey…
  • p. 21 …employed to allow for real-time bidirectional interface with the nervous system. After several modifications, Fetz…
  • p. 22 …understand the brain, its regions of activity and how those area correlate to real time stimulation…
  • p. 25 …FOV=60x60mrn 7 • Experiment time=512 s. (B) (Top) Microelectrode array used in the study. (Bottom…
  • p. 28 …Movement times to target were on the order of 1-2 seconds with up to 75…
  • p. 29 …This trial lasted 3 months before the physical connection between the nerve and the microarray deteriorated…
  • p. 31 …Also beneficial to reaction time is the combined EMG EEG devices mentioned above since the pathways…
  • p. 32 …Proof of principle studies in this technology could emerge at any time, and given the demonstrated…
  • p. 34 …time. J Cogn Neurosci 2002 Nov 15; 14(8): 1200-14. " Hatsopoulos NG, Donoghue JP. The…
  • p. 36 …Targeted muscle reinnervation for real- time myoelectric control of multifunction artificial arms. JAMA 2009 Feb 11…
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CHRONIC NEURAL IMPLANTS AND FMRI
While developing microelectric neural chips for functional studies appears revolutionary
on the surface, it only presents a piece to the greater puzzle of understanding the
feasibility between neuroprosthetic chips and BMI development. For a BMI system to
succeed, researchers must understand the brain, its regions of activity and how those
area correlate to real time stimulation and neural responses, and how the brain may
evolve with training on use of the BMI. This will require the employment of sensitive
neural mapping devices such as fMRI.
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Figure 6. Implant Location. Cartoon shows location and orientation of the different electrode sites in the various
layers of an animal's neocortical implant (layer thicknesses are approximately scaled). The gray band is the 200μm
separation region between the upper and lower layers of the neocortex.
To address this question, studies performed by Parikh et al., have targeted tissue-
specific layers within the motor cortex region, essentially a modified ECoG, where
penetrating microelectrodes exhibit the greatest functionality in cortical prosthetic
design (Reference 47). The interesting parameter of this experimental design is its
ability to successfully employ a behavioral task paradigm where electrodes could
accurately record brain activity and animal response based on audible and visual cues.
With this information the researchers discovered that the lower layers of the cortex are
more likely to encode directional information as compared to units in the upper layers.
This understanding has prompted the use of prosthetic neural implants as critical
instruments for developing accurate BMI models and the mapping all neurological
(brain triggered) responses.
For these experiments, accurate measurement of responses was placed solely into the
unique design of chronic implantable neural prosthetic devices. These devices enabled
investigation of activity in the upper or lower brain tissue layers, including whether
either had a preference for ipsilateral (same body side) versus contralateral (opposite
side of body) movement. In addition, chronic neural implants provided an innovative
method to target isolated brain regions. During this experiment a craniotomy was
performed over the target cortical area. In this procedure, a 2 mm diameter hole is
made into the skull to expose the dura mater. This dura matter is then removed to
reveal the cortical surface. An electrode scaffold array is inserted by hand with the use
of fine PTFE-coated forceps into the target cortical area. Typically, the electrode will be
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Report, from the dia collection. The PDF is mirrored here; the original link is under it. 36 pages are in the text index: search them above, or from the library's search.